Caffeine Ingestion Attenuates Fatigue-induced Loss of Muscle Torque Complexity
Pethick J, Winter SL, Burnley M
Medicine and science in sports and exercise · 44 citations
Review labels
Neutral facts our review recorded about how this study was done. They describe method, never whether we like the result.
How it was studied
- Design
- Randomized controlled trial (classified by our AI screen)
- Studied in
- People
- Main outcome
- Health markers and function
Who paid for it
- Funding
- Funding not disclosed
Publication
- Published
- 2017-10-05 · Med Sci Sports Exerc · vol. 50 · issue 2 · pp. 236–245
- Publisher
- Lippincott Williams & Wilkins
- Cited
- 55 citations · more than 95% of similar papers · 4.4× the field average
- Impact
- Top 10% most cited in its field
- References
- 41 works
- Access
- Open access (repository copy)
- Research areas
- Coffee research and impacts · Sports Performance and Training · Muscle activation and electromyography studies
- Keywords
- Caffeine, Isometric exercise, Approximate entropy, Internal medicine, Sample entropy, Ingestion, Peripheral, Medicine, Muscle contraction, Contraction (grammar), Anesthesia, Cardiology, Endocrinology, Mathematics, Statistics
- MeSH
- knee, muscle, skeletal, femoral nerve, humans, caffeine, electromyography, electric stimulation, muscle fatigue, isometric contraction, torque, adult, female, male, muscle strength dynamometer, young adult
3 authors
From GB
- Jamie PethickMedway School of Pharmacy; University of Kent
- Samantha Lee WinterMedway School of Pharmacy; University of Kent
- Mark BurnleyMedway School of Pharmacy; University of Kent
Abstract
The temporal structure, or complexity, of muscle torque output decreases with neuromuscular fatigue. The role of central fatigue in this process is unclear.
Purpose
We tested the hypothesis that caffeine administration would attenuate the fatigue-induced loss of torque complexity.
Methods
Eleven healthy participants performed intermittent isometric contractions of the knee extensors to task failure at a target torque of 50% maximal voluntary contraction, with a 60% duty factor (6-s contraction, 4-s rest), 60 min after ingesting 6 mg·kg caffeine or a placebo. Torque and surface EMG signals were sampled continuously. Complexity and fractal scaling of torque were quantified using approximate entropy (ApEn) and the detrended fluctuation analysis (DFA) α scaling exponent. Global, central, and peripheral fatigue was quantified using maximal voluntary contractions with femoral nerve stimulation.
Results
Caffeine ingestion increased endurance by 30% ± 16% (mean ± SD; P = 0.019). Complexity decreased in both trials (decreased ApEn, increased DFA α; both P < 0.01), as global, central, and peripheral fatigue developed (all P < 0.01). Complexity decreased significantly more slowly after caffeine ingestion (ApEn, -0.04 ± 0.02 vs -0.06 ± 0.01 (P = 0.004); DFA α, 0.03 ± 0.02 vs 0.04 ± 0.03 (P = 0.024)), as did the rates of global (-18.2 ± 14.1 vs -23.0 ± 17.4 N·m·min, P = 0.004) and central (-3.5 ± 3.4 vs -5.7 ± 3.9 %·min, P = 0.02) but not peripheral (-6.1 ± 4.1 vs -7.9 ± 6.3 N·m·min, P = 0.06) fatigue.
Conclusions
Caffeine ingestion slowed the fatigue-induced loss of torque complexity and increased the time to task failure during intermittent isometric contractions, most likely through central mechanisms.
Abstract via Europe PMC. Copyright remains with the authors or publisher.
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